High-strength steel having excellent brittle crack arrestability and welding part brittle crack initiation resistance, and production method therefor
Abstract
The present invention provides a high-strength steel and a production method therefor, the high-strength steel: comprising, in wt %, C: 0.05-0.09%, Mn: 1.5-2.0%, Ni: 0.3-0.8%, Nb: 0.005-0.04%, Ti: 0.005-0.04%, Cu: 0.1-0.5%, Si: 0.05-0.3%, Al: 0.005-0.05%, P: 100 ppm or less, S: 40 ppm or less, and a remainder made up by Fe and other inevitable impurities; having a center part microstructure comprising, in area %, 70% or more of acicular ferrite and 10% or more of pearlite, wherein the equivalent circular diameter of the pearlite is 15 μm(micrometers) or less; having, in a 2 mm or less subsurface region, a microstructure comprising, in area %, 30% or more of one type or more among ferrite and a remainder made up by bainite, martensite, and pearlite; and having a welding heat affected zone, which is formed when welding, that comprises, in area %, 5% or less of a martensite-austenite constituent.
Claims
exact text as granted — not AI-modified1 . A high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance, comprising:
by wt %, carbon (C): 0.05% to 0.09%, manganese (Mn): 1.5% to 2.0%, nickel (Ni): 0.3% to 0.8%, niobium (Nb): 0.005% to 0.04%, titanium (Ti): 0.005% to 0.04%, copper (Cu): 0.1% to 0.5%, silicon (Si): 0.05% to 0.3%, aluminum (Al): 0.005% to 0.05%, phosphorus (P): 100 ppm or less, sulfur (S): 40 ppm or less, iron (Fe) as a residual component thereof, and inevitable impurities, wherein a microstructure of a central portion includes, by area %, acicular ferrite in an amount of 70% or greater, pearlite in an amount of 10% or less, and one or more selected from a group consisting of ferrite, bainite, and martensite-austenite (MA), as residual components; a circle-equivalent diameter of pearlite being 15 μm or less; a surface portion microstructure in a region at a depth of 2 mm or less, directly below a surface, includes, by area %, ferrite in an amount of 30% or greater and one or more of bainite, martensite, and pearlite as residual components; and a heat affected zone (HAZ) formed during welding includes, by area %, martensite-austenite (MA) in an amount of 5% or less.
2 . The high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance of claim 1 , comprising a thickness of 50 mm or greater.
3 . The high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance of claim 1 , wherein, a weight ratio of Cu to Ni (a Cu/Ni weight ratio) is 0.8 or less.
4 . The high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance of claim 1 , wherein welding heat input during welding is 0.5 kJ/mm to 10 kJ/mm.
5 . The high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance of claim 4 , wherein a welding method during welding includes flux cored arc welding (FCAW) or submerged arc welding (SAW).
6 . The high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance of claim 1 , comprising yield strength of 390 MPa or greater.
7 . The high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance of claim 1 , comprising a Kca value measured at a temperature of −10° C. of 6000 or greater.
8 . The high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance of claim 1 , comprising a Charpy fracture transition temperature of −40° C. or lower in a 1/2t position in a steel material thickness direction, where t is a steel sheet thickness.
9 . A method of manufacturing a high-strength steel material having excellent brittle crack arrestability and welding zone brittle crack initiation resistance, comprising:
rough rolling a slab at a temperature of 900° C. to 1100° C. after reheating the slab at 1000° C. to 1100° C., including, by wt %, C: 0.05% to 0.09%, Mn: 1.5% to 2.0%, Ni: 0.3% to 0.8%, Nb: 0.005% to 0.04%, Ti: 0.005% to 0.04%, Cu: 0.1% to 0.5%, Si: 0.1% to 0.3%, Al: 0.005% to 0.05%, P: 100 ppm or less, S: 40 ppm or less, Fe as a residual component, and inevitable impurities; obtaining a steel sheet by finish rolling a bar obtained from the rough rolling a slab, at a temperature in a range of Ar 3 +60° C. to Ar 3 ° C., based on a temperature of a central portion; and cooling the steel sheet to 700° C. or lower.
10 . The method of claim 9 , wherein a thickness of the steel sheet having been finish rolled is 50 mm or greater.
11 . The method of claim 9 , wherein a reduction ratio per pass of three final passes during the rough rolling a slab is 5% or greater, and a total cumulative reduction ratio is 40% or greater.
12 . The method of claim 9 , wherein three final passes during the rough rolling a slab are performed at a strain rate of 2/sec or lower.
13 . The method of claim 9 , wherein a grain size of a central portion of a bar thickness before finish rolling after the rough rolling a slab is 150 μm or less.
14 . The method of claim 9 , wherein a reduction ratio during the finish rolling is set such that a ratio of a slab thickness (mm) to a steel sheet thickness (mm) after the finish rolling is 3.5 or greater.
15 . The method of claim 9 , wherein a cumulative reduction ratio during the finish rolling is maintained to be 40% or greater, and a reduction ratio per pass, not including skin pass rolling, is maintained to be 4% or greater.
16 . The method of claim 9 , wherein the cooling the steel sheet is performed at a cooling rate of the central portion of 1.5° C./s or higher.
17 . The method of claim 9 , wherein the cooling the steel sheet is performed at an average cooling rate of 2° C./s to 300° C./s.Join the waitlist — get patent alerts
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